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Evidence of Floquet electronic steady states in graphene under continuous-wave mid-infrared irradiation

ORAL

Abstract

Light-induced phenomena in materials can exhibit exotic behavior that extends beyond equilibrium properties, offering new avenues for understanding and controlling electronic phases. So far, non-equilibrium phenomena in solids have been predominantly explored using femtosecond laser pulses, which generate transient, ultra-fast dynamics. Here, we investigate the steady non-equilibrium regime in graphene induced by a continuous-wave (CW) mid-infrared laser. Our transport measurements reveal signatures of a long-lived Floquet phase, where a non-equilibrium electronic population is stabilized by the interplay between coherent photoexcitation and incoherent phonon cooling. The observation of non-equilibrium steady states using CW lasers opens a new regime for low-temperature Floquet phenomena, paving the way toward Floquet engineering of steady-state phases of matter.

Publication: Y. Liu, C. Yang, G. Gaertner, J. Huckabee, A. V. Suslov, G. Refael, F. Nathan, C. Lewandowski, L. E. F. Foa Torres, I. Esin, P. Barbara, N. G. Kalugin, "Evidence of Floquet electronic steady states in graphene under continuous-wave mid-infrared irradiation," arXiv:2410.13930 (2024)

Presenters

  • Christopher K Yang

    Caltech

Authors

  • Christopher K Yang

    Caltech

  • Yijing Liu

    Georgetown University

  • Gabriel Gaertner

    New Mexico Tech

  • John Huckabee

    New Mexico Tech

  • Alexey Suslov

    National High Magnetic Field Laboratory

  • Gil Refael

    Caltech

  • Frederik Nathan

    Univ of Copenhagen

  • Cyprian K Lewandowski

    National High Magnetic Field Laboratory, Florida State University

  • Luis E. F. Foa Torres

    Universidad de Chile

  • Iliya Esin

    Caltech

  • Paola Barbara

    Georgetown University

  • Nikolai G Kalugin

    New Mexico Institute of Mining and Technology